Structural Dynamics of Cardiac Myosin-Binding Protein C Regulation
Structural Dynamics of Cardiac Myosin-Binding Protein C Regulation
批准号:
10090620
负责人:
Brett A Colson
金额:
$38.38万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-01-01 至 2023-12-31
关键词:
AccountingActinsAddressAffectArtificial skinBindingBiological AssayCardiacCardiac Muscle ContractionCardiac MyosinsCardiomyopathiesComputer SimulationDataDevelopmentDiseaseEquilibriumEvaluationFDA approvedFiberFilamentFluorescenceFluorescence Resonance Energy TransferFluorescence SpectroscopyFrequenciesGenesHealthHeartHeart DiseasesHumanHypertrophic CardiomyopathyIn SituIn VitroIndividualInheritedKineticsKnowledgeLabelLeadMeasurementMeasuresMechanicsMedicalMicrofilamentsMolecularMolecular ConformationMonitorMuscleMuscle functionMutationMyocardialMyocardiumMyosin ATPaseN-terminalPathogenesisPathogenicityPathologicPerformancePhenotypePhosphorylationPhysiologicalPositioning AttributePropertyProteinsPublishingRecombinantsRegulationReporterReportingResearchResolutionRoleSarcomeresSiteSkinStressStructureSudden DeathTechnologyTestingTherapeuticThick FilamentThin FilamentThinnessTimeWorkbasebiophysical toolscardiac muscle diseasedata exchangedesigneffective therapyheart cellimprovedin silicoin vivoinnovationmolecular dynamicsmutantmyosin-binding protein Cnovelprotein functionprotein structuresimulationtool
中文摘要
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英文摘要
PROJECT SUMMARY
Hypertrophic cardiomyopathy (HCM) is a relatively common disease affecting more than 1 in 500 individuals
and the leading cause of sudden death in young individuals and athletes. HCM is an unmet medical need with
no FDA-approved treatments. ~40% of all HCM cases are associated with mutations in the gene encoding
cardiac myosin-binding protein C (MyBP-C). MyBP-C is a thick filament-associated protein that is critical for
normal myocardial performance; it is centrally positioned in the sarcomere to regulate interactions between
myosin cross-bridges and actin thin filaments that are responsible for force development. We have previously
demonstrated that increased phosphorylation of MyBP-C enhances actin-myosin interactions leading to
accelerated contraction kinetics in myocardium, whereas reduced phosphorylation led to reduced actin-myosin
proximity and decelerated contraction. However, it is not understood how MyBP-C phosphorylation alters the
structural dynamics of its interactions with actin and/or myosin to modulate force development in normal
myocardium or how mutations alter functions that ultimately contribute to HCM pathogenesis. We have
developed innovative biophysical tools that, for the first time, enable evaluation of: (1) the structural dynamics of
MyBP-C, (2) how it interacts with actin and/or myosin in muscle, and (3) how these interactions are affected by
phosphorylation and known pathologic mutations. We will test the central hypothesis that phosphorylation and
HCM mutations of N-terminal MyBP-C alter functionally significant structural properties of MyBP-C and
interactions with actin and myosin. Aim 1 will evaluate the effects of phosphorylation, HCM mutations, and
binding to actin or myosin on MyBP-C structural dynamics. Spectroscopic approaches will be employed to detect
conformational changes (structure) within MyBP-C due to phosphorylation, HCM mutation, and actin/myosin
binding (function). Molecular dynamics (MD) simulations will be applied as a complementary approach. Aim 2
will determine how MyBP-C phosphorylation and HCM mutants affect proximities and dynamics of key
myocardial proteins. We will utilize site-directed probe technologies in skinned (demembranated) cardiac fibers
to determine how phosphorylation/mutants affect protein structure/interactions in situ to regulate contractility.
The proposed studies capture structural dynamics in real time and resolve interactions in real myocardial space
using novel high-resolution approaches. These aims are a stepwise progression developing a new paradigm for
studying normal and mutant MyBP-C during the contractile cycle. This paradigm involves monitoring distances
between points on proteins and the order (or disorder) of those distances under physiological conditions, in
interacting proteins and functioning myocardium. Not all HCM mutants impact the same functions of MyBP-C.
Time-resolved fluorescence data components, thin/thick filament dynamics, mechanics, and simulations will be
used to separate mutants into identifiable bins, setting the stage for identifying mechanistic-based therapies to
specifically treat different classes of mutations.
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会议论文
Diversity Supplement to Skeletal Myosin-Binding Protein C Regulation and Structural Dynamics
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批准号:10824055
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项目类别:
-
资助金额:$5.22万
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财政年份:2022
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负责人:Brett A Colson
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依托单位:
Skeletal Myosin-Binding Protein C Regulation and Structural Dynamics
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批准号:10666442
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项目类别:
-
资助金额:$44.24万
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财政年份:2022
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负责人:Brett A Colson
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依托单位:
High-throughput discovery platform for modulators of cardiac muscle proteins to treat heart failure
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批准号:10483462
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项目类别:
-
资助金额:$30.65万
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财政年份:2022
-
负责人:Brett A Colson
-
依托单位:
Skeletal Myosin-Binding Protein C Regulation and Structural Dynamics
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批准号:10442876
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项目类别:
-
资助金额:$45.7万
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财政年份:2022
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负责人:Brett A Colson
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依托单位:
Diversity Supplement to Structural Dynamics of Cardiac Myosin-Binding Protein C Regulation
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批准号:10412720
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项目类别:
-
资助金额:$3.15万
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财政年份:2021
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负责人:Brett A Colson
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依托单位:
Structural Dynamics of Cardiac Myosin-Binding Protein C Regulation
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批准号:10545008
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项目类别:
-
资助金额:$38.38万
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财政年份:2019
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负责人:Brett A Colson
-
依托单位:
Structural Dynamics of Cardiac Myosin-Binding Protein C Regulation
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批准号:10320335
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项目类别:
-
资助金额:$38.38万
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财政年份:2019
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负责人:Brett A Colson
-
依托单位:
Structural Dynamics of Cardiac Myosin Binding Protein-C
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批准号:8791218
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项目类别:
-
资助金额:$13.52万
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财政年份:2014
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负责人:Brett A Colson
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依托单位:
Structural Dynamics of Cardiac Myosin Binding Protein-C
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批准号:9129782
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项目类别:
-
资助金额:$24.9万
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财政年份:2014
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负责人:Brett A Colson
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依托单位:
Structural Dynamics of Cardiac Muscle Contraction
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批准号:8060162
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项目类别:
-
资助金额:$4.84万
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财政年份:2011
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负责人:Brett A Colson
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依托单位:
Structural Dynamics of Cardiac Muscle Contraction
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批准号:8211618
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项目类别:
-
资助金额:$5.22万
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财政年份:2011
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负责人:Brett A Colson
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依托单位:
海外基金